US7259084B2

Growth of GaAs epitaxial layers on Si substrate by using a novel GeSi buffer layer

Summary by NHIP

GeSi buffer for GaAs growth

The method grows GaAs epitaxial layers on silicon substrates via a graded GeSi buffer structure. It sequentially deposits a 70 wt. % Ge layer followed by intermediate and pure Ge films at 350 to 650° C. under 20 to 100 m-Torr pressure, with in-situ annealing after each growth step.

Claim Score by NHIP

Read claim 1, the broadest

Abstract

This invention provides a process for growing Ge epitaxial layers on Si substrate by using ultra-high vacuum chemical vapor deposition (UHVCVD), and subsequently growing a GaAs layer on Ge film of the surface of said Ge epitaxial layers by using metal organic chemical vapor deposition (MOCVD). The process comprises steps of, firstly, pre-cleaning a silicon wafer in a standard cleaning procedure, dipping it with HF solution and prebaking to remove its native oxide layer. Then, growing a high Ge-composition epitaxial layer, such as Si0.1Ge0.9 in a thickness of 0.8 μm on said Si substrate by using ultra-high vacuum chemical vapor deposition under certain conditions. Thus, many dislocations are generated and located near the interface and in the low of part of Si01.Ge0.9 due to the large mismatch between this layer and Si substrate. Furthermore, a subsequent 0.8 μm Si0.05Ge0.95 layer, and/or optionally a further 0.8 μm Si0.02Ge0.98 layer, are grown. They form strained interfaces of said layers can bend and terminate the propagated upward dislocation very effectively. Therefore, a film of pure Ge is grown on the surface of said epitaxial layers. Finally, a GaAs epitaxial layer is grown on said Ge film by using MOCVD.

US7259084B2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Expired 5 November 2024, 1.9 years ago.

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13 claims: 1 independent, 12 dependent

  1. 1
    Broadest claimClaim Score 55, average(NHIP)A process for growing a GaAs epitaxial layer on Ge/SiGe/Si substrate comprising steps of:(1) providing a clean silicon wafer;(2) growing a first SiGe epitaxial layer with a certain thickness, wherein the layer comprises at least 70 wt. % of Ge;(3) performing in-situ high temperature annealing for the first layer;(4) growing a second and/or an optional third layers wherein the Ge content of the optional third layer is more than that of the second layer, and the Ge content of the second layer is more than that of the first layer, and during each of two growing periods, performing in-situ high temperature annealing for those layers;(5) growing a pure Ge film on the epitaxial layer from step (4);(6) finally, growing GaAs epitaxy on said Ge film.